Effect of inertia on drop breakup under shear
- 1 January 2001
- journal article
- Published by AIP Publishing in Physics of Fluids
- Vol. 13 (1) , 7-13
- https://doi.org/10.1063/1.1331321
Abstract
A spherical drop, placed in a second liquid of the same density and viscosity, is subjected to shear between parallel walls. The subsequent flow is investigated numerically with a volume-of-fluid continuous-surface-force algorithm. Inertially driven breakup is examined. The critical Reynolds numbers are examined for capillary numbers in the range where the drop does not break up in Stokes flow. It is found that the effect of inertia is to rotate the drop toward the vertical direction, with a mechanism analogous to aerodynamic lift, and the drop then experiences higher shear, which pulls the drop apart horizontally. The balance of inertial stress with capillary stress shows that the critical Reynolds number scales inversely proportional to the capillary number, and this is confirmed with full numerical simulations. Drops exhibit self-similar damped oscillations towards equilibrium analogous to a one-dimensional mass-spring system. The stationary drop configurations near critical conditions approach an inviscid limit, independent of the microphysical flow- and fluid-parameters.Keywords
This publication has 11 references indexed in Scilit:
- Numerical simulation of breakup of a viscous drop in simple shear flow through a volume-of-fluid methodPhysics of Fluids, 2000
- DIRECT NUMERICAL SIMULATION OF FREE-SURFACE AND INTERFACIAL FLOWAnnual Review of Fluid Mechanics, 1999
- Adaptive Triangulation of Evolving, Closed, or Open Surfaces by the Advancing-Front MethodJournal of Computational Physics, 1998
- Drop breakup in three-dimensional viscous flowsPhysics of Fluids, 1998
- Three-dimensional shape of a drop under simple shear flowJournal of Rheology, 1998
- Modelling Merging and Fragmentation in Multiphase Flows with SURFERJournal of Computational Physics, 1994
- Dynamics of Drop Deformation and Breakup in Viscous FluidsAnnual Review of Fluid Mechanics, 1994
- A continuum method for modeling surface tensionJournal of Computational Physics, 1992
- The Deformation of Small Viscous Drops and Bubbles in Shear FlowsAnnual Review of Fluid Mechanics, 1984
- DISPERSION PHENOMENA IN HIGH VISCOSITY IMMISCIBLE FLUID SYSTEMS AND APPLICATION OF STATIC MIXERS AS DISPERSION DEVICES IN SUCH SYSTEMSChemical Engineering Communications, 1982